Loss of luminal lineage drives resistance to next-generation ERα antagonists in pretreated ER+ HER2− locally-advanced or metastatic breast cancer

J Jackson Liang C Christy Ong K Kareem Heslop J Jane Guan V Vasumathi Kameswaran B Bence Daniel (Department of Pathology, Stanford University) M Minyi Shi (Department of Genetics, Stanford School of Medicine, Stanford, CA, USA.) Y Yuxin Liang J Jennifer M. Giltnane J Junko Aimi C Ching-Wei Chang M Mary R. Gates J Jennifer Eng-Wong P Pablo Perez-Moreno K Komal L. Jhaveri (Breast and Early Drug Development Service, Department of Medicine, Memorial Sloan Kettering Cancer Center, New York) N Nicholas C. Turner E Elgene Lim (Garvan Institute of Medical Research, Sydney) C Ciara Metcalfe H Heather M. Moore

Abstract

Abstract Next-generation selective estrogen receptor-α (ERα) antagonist/degraders (SERDs) are being developed for ER-positive breast cancer (ER + BC), with intentions of improving outcomes for patients. In recent clinical trials of metastatic ER + BC, next-generation SERDs demonstrated clinical activity, and elacestrant received an approval for advanced ESR1 -mutant disease. However, responses to these drugs were highly heterogeneous: across trials and independent of ESR1 status, 30–50% of patients progressed by their first follow-up scan while other patients sustained benefit for 2 years or more. Here, we interrogate the basis for heterogeneous responses by comparing biopsies from non-responding patients (NR; progression-free survival <2 months) and responding patients (Resp; PFS ≥ 2 months) who received the next-generation SERD giredestrant. While Resp tumors maintain high dependency on ERα signaling, NR tumors exhibit loss of luminal lineage identity and by extension, ERα dependence. NR tumors instead up-regulate multiple ERα-independent proliferative pathways, such as EGFR/MAPK and Hippo/TEAD, which may represent targetable dependencies in NR disease. Modeling resistance and lineage plasticity in vitro, we find that giredestrant-resistant ER + BC cell lines exhibit profound shifts in chromatin accessibility, with the transcription factors, FOXA1 and FOXM1, implicated in gene expression of NR-upregulated proliferative pathways.

Article Details

Volume / Issue Vol. 17, Issue 1
Published April 01, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

J

Jackson Liang

C

Christy Ong

K

Kareem Heslop

J

Jane Guan

V

Vasumathi Kameswaran

B

Bence Daniel

Department of Pathology, Stanford University

M

Minyi Shi

Department of Genetics, Stanford School of Medicine, Stanford, CA, USA.

Y

Yuxin Liang

J

Jennifer M. Giltnane

J

Junko Aimi

C

Ching-Wei Chang

M

Mary R. Gates

J

Jennifer Eng-Wong

P

Pablo Perez-Moreno

K

Komal L. Jhaveri

Breast and Early Drug Development Service, Department of Medicine, Memorial Sloan Kettering Cancer Center, New York

N

Nicholas C. Turner

E

Elgene Lim

Garvan Institute of Medical Research, Sydney

C

Ciara Metcalfe

H

Heather M. Moore